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635 lines
21 KiB
Nim
635 lines
21 KiB
Nim
#
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#
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# The Nimrod Compiler
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# (c) Copyright 2013 Andreas Rumpf
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#
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# See the file "copying.txt", included in this
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# distribution, for details about the copyright.
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#
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import
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intsets, ast, astalgo, msgs, renderer, magicsys, types, idents, trees,
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wordrecg, strutils, options, guards
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# Second semantic checking pass over the AST. Necessary because the old
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# way had some inherent problems. Performs:
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#
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# * effect+exception tracking
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# * "usage before definition" checking
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# * checks for invalid usages of compiletime magics (not implemented)
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# * checks for invalid usages of PNimNode (not implemented)
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# * later: will do an escape analysis for closures at least
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# Predefined effects:
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# io, time (time dependent), gc (performs GC'ed allocation), exceptions,
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# side effect (accesses global), store (stores into *type*),
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# store_unkown (performs some store) --> store(any)|store(x)
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# load (loads from *type*), recursive (recursive call), unsafe,
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# endless (has endless loops), --> user effects are defined over *patterns*
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# --> a TR macro can annotate the proc with user defined annotations
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# --> the effect system can access these
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# Load&Store analysis is performed on *paths*. A path is an access like
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# obj.x.y[i].z; splitting paths up causes some problems:
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#
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# var x = obj.x
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# var z = x.y[i].z
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#
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# Alias analysis is affected by this too! A good solution is *type splitting*:
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# T becomes T1 and T2 if it's known that T1 and T2 can't alias.
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#
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# An aliasing problem and a race condition are effectively the same problem.
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# Type based alias analysis is nice but not sufficient; especially splitting
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# an array and filling it in parallel should be supported but is not easily
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# done: It essentially requires a built-in 'indexSplit' operation and dependent
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# typing.
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# ------------------------ exception and tag tracking -------------------------
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discard """
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exception tracking:
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a() # raises 'x', 'e'
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try:
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b() # raises 'e'
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except e:
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# must not undo 'e' here; hrm
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c()
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--> we need a stack of scopes for this analysis
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"""
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type
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TEffects = object
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exc: PNode # stack of exceptions
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tags: PNode # list of tags
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bottom: int
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owner: PSym
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init: seq[int] # list of initialized variables
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guards: TModel # nested guards
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locked: seq[PNode] # locked locations
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PEffects = var TEffects
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proc isLocalVar(a: PEffects, s: PSym): bool =
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s.kind in {skVar, skResult} and sfGlobal notin s.flags and s.owner == a.owner
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proc initVar(a: PEffects, n: PNode) =
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if n.kind != nkSym: return
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let s = n.sym
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if isLocalVar(a, s):
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for x in a.init:
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if x == s.id: return
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a.init.add s.id
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proc initVarViaNew(a: PEffects, n: PNode) =
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if n.kind != nkSym: return
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let s = n.sym
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if {tfNeedsInit, tfNotNil} * s.typ.flags <= {tfNotNil}:
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# 'x' is not nil, but that doesn't mean it's not nil children
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# are initialized:
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initVar(a, n)
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proc useVar(a: PEffects, n: PNode) =
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let s = n.sym
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if isLocalVar(a, s):
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if s.id notin a.init:
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if {tfNeedsInit, tfNotNil} * s.typ.flags != {}:
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when true:
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message(n.info, warnProveInit, s.name.s)
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else:
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Message(n.info, errGenerated,
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"'$1' might not have been initialized" % s.name.s)
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else:
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message(n.info, warnUninit, s.name.s)
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# prevent superfluous warnings about the same variable:
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a.init.add s.id
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type
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TIntersection = seq[tuple[id, count: int]] # a simple count table
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proc addToIntersection(inter: var TIntersection, s: int) =
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for j in 0.. <inter.len:
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if s == inter[j].id:
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inc inter[j].count
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return
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inter.add((id: s, count: 1))
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proc throws(tracked, n: PNode) =
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if n.typ == nil or n.typ.kind != tyError: tracked.add n
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proc excType(n: PNode): PType =
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# reraise is like raising E_Base:
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let t = if n.kind == nkEmpty: sysTypeFromName"E_Base" else: n.typ
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result = skipTypes(t, skipPtrs)
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proc createRaise(n: PNode): PNode =
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result = newNode(nkType)
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result.typ = sysTypeFromName"E_Base"
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if not n.isNil: result.info = n.info
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proc createTag(n: PNode): PNode =
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result = newNode(nkType)
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result.typ = sysTypeFromName"TEffect"
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if not n.isNil: result.info = n.info
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proc addEffect(a: PEffects, e: PNode, useLineInfo=true) =
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assert e.kind != nkRaiseStmt
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var aa = a.exc
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for i in a.bottom .. <aa.len:
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if sameType(aa[i].excType, e.excType):
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if not useLineInfo or gCmd == cmdDoc: return
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elif aa[i].info == e.info: return
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throws(a.exc, e)
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proc addTag(a: PEffects, e: PNode, useLineInfo=true) =
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var aa = a.tags
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for i in 0 .. <aa.len:
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if sameType(aa[i].typ.skipTypes(skipPtrs), e.typ.skipTypes(skipPtrs)):
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if not useLineInfo or gCmd == cmdDoc: return
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elif aa[i].info == e.info: return
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throws(a.tags, e)
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proc mergeEffects(a: PEffects, b, comesFrom: PNode) =
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if b.isNil:
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addEffect(a, createRaise(comesFrom))
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else:
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for effect in items(b): addEffect(a, effect, useLineInfo=comesFrom != nil)
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proc mergeTags(a: PEffects, b, comesFrom: PNode) =
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if b.isNil:
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addTag(a, createTag(comesFrom))
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else:
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for effect in items(b): addTag(a, effect, useLineInfo=comesFrom != nil)
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proc listEffects(a: PEffects) =
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for e in items(a.exc): message(e.info, hintUser, typeToString(e.typ))
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for e in items(a.tags): message(e.info, hintUser, typeToString(e.typ))
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proc catches(tracked: PEffects, e: PType) =
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let e = skipTypes(e, skipPtrs)
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var L = tracked.exc.len
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var i = tracked.bottom
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while i < L:
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# r supertype of e?
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if safeInheritanceDiff(tracked.exc[i].excType, e) <= 0:
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tracked.exc.sons[i] = tracked.exc.sons[L-1]
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dec L
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else:
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inc i
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if not isNil(tracked.exc.sons):
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setLen(tracked.exc.sons, L)
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else:
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assert L == 0
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proc catchesAll(tracked: PEffects) =
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if not isNil(tracked.exc.sons):
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setLen(tracked.exc.sons, tracked.bottom)
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proc track(tracked: PEffects, n: PNode)
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proc trackTryStmt(tracked: PEffects, n: PNode) =
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let oldBottom = tracked.bottom
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tracked.bottom = tracked.exc.len
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let oldState = tracked.init.len
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var inter: TIntersection = @[]
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track(tracked, n.sons[0])
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for i in oldState.. <tracked.init.len:
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addToIntersection(inter, tracked.init[i])
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var branches = 1
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var hasFinally = false
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for i in 1 .. < n.len:
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let b = n.sons[i]
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let blen = sonsLen(b)
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if b.kind == nkExceptBranch:
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inc branches
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if blen == 1:
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catchesAll(tracked)
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else:
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for j in countup(0, blen - 2):
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assert(b.sons[j].kind == nkType)
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catches(tracked, b.sons[j].typ)
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setLen(tracked.init, oldState)
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track(tracked, b.sons[blen-1])
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for i in oldState.. <tracked.init.len:
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addToIntersection(inter, tracked.init[i])
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else:
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assert b.kind == nkFinally
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setLen(tracked.init, oldState)
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track(tracked, b.sons[blen-1])
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hasFinally = true
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tracked.bottom = oldBottom
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if not hasFinally:
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setLen(tracked.init, oldState)
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for id, count in items(inter):
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if count == branches: tracked.init.add id
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proc isIndirectCall(n: PNode, owner: PSym): bool =
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# we don't count f(...) as an indirect call if 'f' is an parameter.
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# Instead we track expressions of type tyProc too. See the manual for
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# details:
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if n.kind != nkSym:
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result = true
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elif n.sym.kind == skParam:
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result = owner != n.sym.owner or owner == nil
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elif n.sym.kind notin routineKinds:
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result = true
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proc isForwardedProc(n: PNode): bool =
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result = n.kind == nkSym and sfForward in n.sym.flags
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proc trackPragmaStmt(tracked: PEffects, n: PNode) =
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for i in countup(0, sonsLen(n) - 1):
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var it = n.sons[i]
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if whichPragma(it) == wEffects:
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# list the computed effects up to here:
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listEffects(tracked)
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proc effectSpec(n: PNode, effectType = wRaises): PNode =
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for i in countup(0, sonsLen(n) - 1):
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var it = n.sons[i]
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if it.kind == nkExprColonExpr and whichPragma(it) == effectType:
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result = it.sons[1]
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if result.kind notin {nkCurly, nkBracket}:
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result = newNodeI(nkCurly, result.info)
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result.add(it.sons[1])
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return
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proc documentEffect(n, x: PNode, effectType: TSpecialWord, idx: int) =
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var x = x
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let spec = effectSpec(x, effectType)
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if isNil(spec):
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let s = n.sons[namePos].sym
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let actual = s.typ.n.sons[0]
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if actual.len != effectListLen: return
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let real = actual.sons[idx]
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# warning: hack ahead:
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var effects = newNodeI(nkBracket, n.info, real.len)
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for i in 0 .. <real.len:
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var t = typeToString(real[i].typ)
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if t.startsWith("ref "): t = substr(t, 4)
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effects.sons[i] = newIdentNode(getIdent(t), n.info)
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# set the type so that the following analysis doesn't screw up:
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effects.sons[i].typ = real[i].typ
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var pair = newNode(nkExprColonExpr, n.info, @[
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newIdentNode(getIdent(specialWords[effectType]), n.info), effects])
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if x.kind == nkEmpty:
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x = newNodeI(nkPragma, n.info)
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n.sons[pragmasPos] = x
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x.add(pair)
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proc documentRaises*(n: PNode) =
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if n.sons[namePos].kind != nkSym: return
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documentEffect(n, n.sons[pragmasPos], wRaises, exceptionEffects)
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documentEffect(n, n.sons[pragmasPos], wTags, tagEffects)
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proc propagateEffects(tracked: PEffects, n: PNode, s: PSym) =
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let pragma = s.ast.sons[pragmasPos]
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let spec = effectSpec(pragma, wRaises)
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mergeEffects(tracked, spec, n)
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let tagSpec = effectSpec(pragma, wTags)
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mergeTags(tracked, tagSpec, n)
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proc notNilCheck(tracked: PEffects, n: PNode, paramType: PType) =
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let n = n.skipConv
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if paramType != nil and tfNotNil in paramType.flags and
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n.typ != nil and tfNotNil notin n.typ.flags:
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if n.kind == nkAddr:
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# addr(x[]) can't be proven, but addr(x) can:
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if not containsNode(n, {nkDerefExpr, nkHiddenDeref}): return
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elif n.kind == nkSym and n.sym.kind in routineKinds:
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# 'p' is not nil obviously:
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return
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case impliesNotNil(tracked.guards, n)
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of impUnknown:
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message(n.info, errGenerated,
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"cannot prove '$1' is not nil" % n.renderTree)
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of impNo:
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message(n.info, errGenerated, "'$1' is provably nil" % n.renderTree)
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of impYes: discard
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proc trackOperand(tracked: PEffects, n: PNode, paramType: PType) =
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let op = n.typ
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if op != nil and op.kind == tyProc and n.kind != nkNilLit:
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internalAssert op.n.sons[0].kind == nkEffectList
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var effectList = op.n.sons[0]
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let s = n.skipConv
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if s.kind == nkSym and s.sym.kind in routineKinds:
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propagateEffects(tracked, n, s.sym)
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elif effectList.len == 0:
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if isForwardedProc(n):
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propagateEffects(tracked, n, n.sym)
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else:
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addEffect(tracked, createRaise(n))
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addTag(tracked, createTag(n))
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else:
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mergeEffects(tracked, effectList.sons[exceptionEffects], n)
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mergeTags(tracked, effectList.sons[tagEffects], n)
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notNilCheck(tracked, n, paramType)
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proc breaksBlock(n: PNode): bool =
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case n.kind
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of nkStmtList, nkStmtListExpr:
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for c in n:
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if breaksBlock(c): return true
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of nkBreakStmt, nkReturnStmt, nkRaiseStmt:
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return true
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of nkCallKinds:
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if n.sons[0].kind == nkSym and sfNoReturn in n.sons[0].sym.flags:
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return true
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else:
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discard
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proc trackCase(tracked: PEffects, n: PNode) =
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track(tracked, n.sons[0])
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let oldState = tracked.init.len
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let oldFacts = tracked.guards.len
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let interesting = interestingCaseExpr(n.sons[0]) and warnProveField in gNotes
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var inter: TIntersection = @[]
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var toCover = 0
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for i in 1.. <n.len:
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let branch = n.sons[i]
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setLen(tracked.init, oldState)
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if interesting:
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setLen(tracked.guards, oldFacts)
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addCaseBranchFacts(tracked.guards, n, i)
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for i in 0 .. <branch.len:
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track(tracked, branch.sons[i])
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if not breaksBlock(branch.lastSon): inc toCover
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for i in oldState.. <tracked.init.len:
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addToIntersection(inter, tracked.init[i])
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let exh = case skipTypes(n.sons[0].typ, abstractVarRange-{tyTypeDesc}).kind
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of tyFloat..tyFloat128, tyString:
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lastSon(n).kind == nkElse
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else:
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true
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setLen(tracked.init, oldState)
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if exh:
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for id, count in items(inter):
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if count >= toCover: tracked.init.add id
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# else we can't merge
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setLen(tracked.guards, oldFacts)
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proc trackIf(tracked: PEffects, n: PNode) =
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track(tracked, n.sons[0].sons[0])
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let oldFacts = tracked.guards.len
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addFact(tracked.guards, n.sons[0].sons[0])
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let oldState = tracked.init.len
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var inter: TIntersection = @[]
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var toCover = 0
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track(tracked, n.sons[0].sons[1])
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if not breaksBlock(n.sons[0].sons[1]): inc toCover
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for i in oldState.. <tracked.init.len:
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addToIntersection(inter, tracked.init[i])
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for i in 1.. <n.len:
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let branch = n.sons[i]
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setLen(tracked.guards, oldFacts)
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for j in 0..i-1:
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addFactNeg(tracked.guards, n.sons[j].sons[0])
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if branch.len > 1:
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addFact(tracked.guards, branch.sons[0])
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setLen(tracked.init, oldState)
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for i in 0 .. <branch.len:
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track(tracked, branch.sons[i])
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if not breaksBlock(branch.lastSon): inc toCover
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for i in oldState.. <tracked.init.len:
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addToIntersection(inter, tracked.init[i])
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setLen(tracked.init, oldState)
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if lastSon(n).len == 1:
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for id, count in items(inter):
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if count >= toCover: tracked.init.add id
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# else we can't merge as it is not exhaustive
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setLen(tracked.guards, oldFacts)
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proc trackBlock(tracked: PEffects, n: PNode) =
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if n.kind in {nkStmtList, nkStmtListExpr}:
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var oldState = -1
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for i in 0.. <n.len:
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if hasSubnodeWith(n.sons[i], nkBreakStmt):
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# block:
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# x = def
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# if ...: ... break # some nested break
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# y = def
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# --> 'y' not defined after block!
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if oldState < 0: oldState = tracked.init.len
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track(tracked, n.sons[i])
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if oldState > 0: setLen(tracked.init, oldState)
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else:
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track(tracked, n)
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proc isTrue(n: PNode): bool =
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n.kind == nkSym and n.sym.kind == skEnumField and n.sym.position != 0 or
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n.kind == nkIntLit and n.intVal != 0
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proc paramType(op: PType, i: int): PType =
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if op != nil and i < op.len: result = op.sons[i]
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proc track(tracked: PEffects, n: PNode) =
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case n.kind
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of nkSym:
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useVar(tracked, n)
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of nkRaiseStmt:
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n.sons[0].info = n.info
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throws(tracked.exc, n.sons[0])
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for i in 0 .. <safeLen(n):
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track(tracked, n.sons[i])
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of nkCallKinds:
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# p's effects are ours too:
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let a = n.sons[0]
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let op = a.typ
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# XXX: in rare situations, templates and macros will reach here after
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# calling getAst(templateOrMacro()). Currently, templates and macros
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# are indistinguishable from normal procs (both have tyProc type) and
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# we can detect them only by cheking for attached nkEffectList.
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if op != nil and op.kind == tyProc and op.n.sons[0].kind == nkEffectList:
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var effectList = op.n.sons[0]
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if a.kind == nkSym and a.sym.kind == skMethod:
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propagateEffects(tracked, n, a.sym)
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elif effectList.len == 0:
|
|
if isForwardedProc(a):
|
|
propagateEffects(tracked, n, a.sym)
|
|
elif isIndirectCall(a, tracked.owner):
|
|
addEffect(tracked, createRaise(n))
|
|
addTag(tracked, createTag(n))
|
|
else:
|
|
mergeEffects(tracked, effectList.sons[exceptionEffects], n)
|
|
mergeTags(tracked, effectList.sons[tagEffects], n)
|
|
for i in 1 .. <len(n): trackOperand(tracked, n.sons[i], paramType(op, i))
|
|
if a.kind == nkSym and a.sym.magic in {mNew, mNewFinalize, mNewSeq}:
|
|
# may not look like an assignment, but it is:
|
|
initVarViaNew(tracked, n.sons[1])
|
|
for i in 0 .. <safeLen(n):
|
|
track(tracked, n.sons[i])
|
|
of nkCheckedFieldExpr:
|
|
track(tracked, n.sons[0])
|
|
if warnProveField in gNotes: checkFieldAccess(tracked.guards, n)
|
|
of nkTryStmt: trackTryStmt(tracked, n)
|
|
of nkPragma: trackPragmaStmt(tracked, n)
|
|
of nkAsgn, nkFastAsgn:
|
|
track(tracked, n.sons[1])
|
|
initVar(tracked, n.sons[0])
|
|
invalidateFacts(tracked.guards, n.sons[0])
|
|
track(tracked, n.sons[0])
|
|
addAsgnFact(tracked.guards, n.sons[0], n.sons[1])
|
|
notNilCheck(tracked, n.sons[1], n.sons[0].typ)
|
|
of nkVarSection:
|
|
for child in n:
|
|
let last = lastSon(child)
|
|
if child.kind == nkIdentDefs and last.kind != nkEmpty:
|
|
track(tracked, last)
|
|
for i in 0 .. child.len-3:
|
|
initVar(tracked, child.sons[i])
|
|
addAsgnFact(tracked.guards, child.sons[i], last)
|
|
notNilCheck(tracked, last, child.sons[i].typ)
|
|
# since 'var (a, b): T = ()' is not even allowed, there is always type
|
|
# inference for (a, b) and thus no nil checking is necessary.
|
|
of nkCaseStmt: trackCase(tracked, n)
|
|
of nkIfStmt, nkIfExpr: trackIf(tracked, n)
|
|
of nkBlockStmt, nkBlockExpr: trackBlock(tracked, n.sons[1])
|
|
of nkWhileStmt:
|
|
track(tracked, n.sons[0])
|
|
# 'while true' loop?
|
|
if isTrue(n.sons[0]):
|
|
trackBlock(tracked, n.sons[1])
|
|
else:
|
|
# loop may never execute:
|
|
let oldState = tracked.init.len
|
|
let oldFacts = tracked.guards.len
|
|
addFact(tracked.guards, n.sons[0])
|
|
track(tracked, n.sons[1])
|
|
setLen(tracked.init, oldState)
|
|
setLen(tracked.guards, oldFacts)
|
|
of nkForStmt, nkParForStmt:
|
|
# we are very conservative here and assume the loop is never executed:
|
|
let oldState = tracked.init.len
|
|
for i in 0 .. <len(n):
|
|
track(tracked, n.sons[i])
|
|
setLen(tracked.init, oldState)
|
|
of nkObjConstr:
|
|
track(tracked, n.sons[0])
|
|
let oldFacts = tracked.guards.len
|
|
for i in 1 .. <len(n):
|
|
let x = n.sons[i]
|
|
track(tracked, x)
|
|
if sfDiscriminant in x.sons[0].sym.flags:
|
|
addDiscriminantFact(tracked.guards, x)
|
|
setLen(tracked.guards, oldFacts)
|
|
of nkTypeSection, nkProcDef, nkConverterDef, nkMethodDef, nkIteratorDef,
|
|
nkMacroDef, nkTemplateDef:
|
|
discard
|
|
else:
|
|
for i in 0 .. <safeLen(n): track(tracked, n.sons[i])
|
|
|
|
proc checkRaisesSpec(spec, real: PNode, msg: string, hints: bool) =
|
|
# check that any real exception is listed in 'spec'; mark those as used;
|
|
# report any unused exception
|
|
var used = initIntSet()
|
|
for r in items(real):
|
|
block search:
|
|
for s in 0 .. <spec.len:
|
|
if safeInheritanceDiff(r.excType, spec[s].typ) <= 0:
|
|
used.incl(s)
|
|
break search
|
|
# XXX call graph analysis would be nice here!
|
|
pushInfoContext(spec.info)
|
|
localError(r.info, errGenerated, msg & typeToString(r.typ))
|
|
popInfoContext()
|
|
# hint about unnecessarily listed exception types:
|
|
if hints:
|
|
for s in 0 .. <spec.len:
|
|
if not used.contains(s):
|
|
message(spec[s].info, hintXDeclaredButNotUsed, renderTree(spec[s]))
|
|
|
|
proc checkMethodEffects*(disp, branch: PSym) =
|
|
## checks for consistent effects for multi methods.
|
|
let actual = branch.typ.n.sons[0]
|
|
if actual.len != effectListLen: return
|
|
|
|
let p = disp.ast.sons[pragmasPos]
|
|
let raisesSpec = effectSpec(p, wRaises)
|
|
if not isNil(raisesSpec):
|
|
checkRaisesSpec(raisesSpec, actual.sons[exceptionEffects],
|
|
"can raise an unlisted exception: ", hints=off)
|
|
let tagsSpec = effectSpec(p, wTags)
|
|
if not isNil(tagsSpec):
|
|
checkRaisesSpec(tagsSpec, actual.sons[tagEffects],
|
|
"can have an unlisted effect: ", hints=off)
|
|
|
|
proc setEffectsForProcType*(t: PType, n: PNode) =
|
|
var effects = t.n.sons[0]
|
|
internalAssert t.kind == tyProc and effects.kind == nkEffectList
|
|
|
|
let
|
|
raisesSpec = effectSpec(n, wRaises)
|
|
tagsSpec = effectSpec(n, wTags)
|
|
if not isNil(raisesSpec) or not isNil(tagsSpec):
|
|
internalAssert effects.len == 0
|
|
newSeq(effects.sons, effectListLen)
|
|
if not isNil(raisesSpec):
|
|
effects.sons[exceptionEffects] = raisesSpec
|
|
if not isNil(tagsSpec):
|
|
effects.sons[tagEffects] = tagsSpec
|
|
|
|
proc initEffects(effects: PNode; s: PSym; t: var TEffects) =
|
|
newSeq(effects.sons, effectListLen)
|
|
effects.sons[exceptionEffects] = newNodeI(nkArgList, s.info)
|
|
effects.sons[tagEffects] = newNodeI(nkArgList, s.info)
|
|
|
|
t.exc = effects.sons[exceptionEffects]
|
|
t.tags = effects.sons[tagEffects]
|
|
t.owner = s
|
|
t.init = @[]
|
|
t.guards = @[]
|
|
|
|
proc trackProc*(s: PSym, body: PNode) =
|
|
var effects = s.typ.n.sons[0]
|
|
internalAssert effects.kind == nkEffectList
|
|
# effects already computed?
|
|
if sfForward in s.flags: return
|
|
if effects.len == effectListLen: return
|
|
|
|
var t: TEffects
|
|
initEffects(effects, s, t)
|
|
track(t, body)
|
|
|
|
if not isEmptyType(s.typ.sons[0]) and tfNeedsInit in s.typ.sons[0].flags and
|
|
s.kind in {skProc, skConverter, skMethod}:
|
|
var res = s.ast.sons[resultPos].sym # get result symbol
|
|
if res.id notin t.init:
|
|
message(body.info, warnProveInit, "result")
|
|
let p = s.ast.sons[pragmasPos]
|
|
let raisesSpec = effectSpec(p, wRaises)
|
|
if not isNil(raisesSpec):
|
|
checkRaisesSpec(raisesSpec, t.exc, "can raise an unlisted exception: ",
|
|
hints=on)
|
|
# after the check, use the formal spec:
|
|
effects.sons[exceptionEffects] = raisesSpec
|
|
|
|
let tagsSpec = effectSpec(p, wTags)
|
|
if not isNil(tagsSpec):
|
|
checkRaisesSpec(tagsSpec, t.tags, "can have an unlisted effect: ",
|
|
hints=off)
|
|
# after the check, use the formal spec:
|
|
effects.sons[tagEffects] = tagsSpec
|
|
|
|
proc trackTopLevelStmt*(module: PSym; n: PNode) =
|
|
if n.kind in {nkPragma, nkMacroDef, nkTemplateDef, nkProcDef,
|
|
nkTypeSection, nkConverterDef, nkMethodDef, nkIteratorDef}:
|
|
return
|
|
var effects = newNode(nkEffectList, n.info)
|
|
var t: TEffects
|
|
initEffects(effects, module, t)
|
|
|
|
track(t, n)
|